基于支持向量机的移动认知无线电曼哈顿城市环境频谱分配方案

Yao Wang, Yi Zhang, Jiamei Chen, Yang Long, Yang Yang
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引用次数: 0

摘要

认知无线电(CR)是近年来提出的一种重要的主频谱复用方法。然而,对于移动认知无线网络(crn)的认知节点移动性研究尚不充分。本文提出了一种基于支持向量机(SVM)的曼哈顿城市交通环境下的频谱分配方案,该方案在频谱可用性预测中考虑了认知节点的位置和速度信息。数值结果表明,与传统的资源分配算法相比,该算法在总频谱利用率方面具有良好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Support Vector Machine Based Spectrum Allocation Scheme for the Mobile Cognitive Radio Manhattan City Environments
Cognitive radio (CR) is proposed as a critical means to reuse the primary spectrum in recent years. However, the cognitive node mobility has not fully researched for the mobile cognitive radio networks (CRNs). In this paper, a support vector machine (SVM) based spectrum assignment scheme is presented in the Manhattan city mobility environments, which takes the position and speed information of cognitive nodes into consideration during the spectrum availability prediction. Numerical results show good performance in the total spectrum utilization comparing with the traditional resource allocation algorithms.
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